Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment Inertia

The evaluation of the impact force on structures due to a flood wave is of utmost importance for estimating physical damage and designing adequate countermeasures. The present study investigates, using 2D shallow-water approximation, the morphodynamics and forces caused by a dam-break wave against a...

Full description

Bibliographic Details
Main Authors: Cristiana Di Cristo, Massimo Greco, Michele Iervolino, Andrea Vacca
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Water
Subjects:
Online Access:https://www.mdpi.com/2073-4441/13/2/232
id doaj-a4ba6e9a3a944f83a3823d5d5087a8c7
record_format Article
spelling doaj-a4ba6e9a3a944f83a3823d5d5087a8c72021-01-20T00:04:54ZengMDPI AGWater2073-44412021-01-011323223210.3390/w13020232Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment InertiaCristiana Di Cristo0Massimo Greco1Michele Iervolino2Andrea Vacca3Department of Civil, Environmental and Architectural Engineering, Università degli Studi di Napoli Federico II, Via Claudio 21, 80125 Naples, ItalyDepartment of Civil, Environmental and Architectural Engineering, Università degli Studi di Napoli Federico II, Via Claudio 21, 80125 Naples, ItalyDepartment of Engineering, Università degli Studi della Campania Luigi Vanvitelli, Via Roma 29, 81031 Aversa, ItalyDepartment of Civil, Environmental and Architectural Engineering, Università degli Studi di Napoli Federico II, Via Claudio 21, 80125 Naples, ItalyThe evaluation of the impact force on structures due to a flood wave is of utmost importance for estimating physical damage and designing adequate countermeasures. The present study investigates, using 2D shallow-water approximation, the morphodynamics and forces caused by a dam-break wave against a rigid obstacle in the presence of an erodible bed. A widely used coupled equilibrium model, based on the two-dimensional Saint–Venant hydrodynamic equations combined with the sediment continuity Exner equation (SVEM), is compared with a more complex two-phase model (TPM). Considering an experimental set-up presented in the literature with a single rigid obstacle in a channel, two series of tests were performed, assuming sand or light sediments on the bottom. The former test is representative of a typical laboratory experiment, and the latter may be scaled up to a field case. For each test, two different particle diameters were considered. Independently from the particle size, it was found that in the sand tests, SVEM performs similarly to TPM. In the case of light sediment, larger differences are observed, and the SVEM predicts a higher force of about 26% for both considered diameters. The analysis of the flow fields and the morphodynamics shows these differences can be essentially ascribed to the role of inertia of the solid particles.https://www.mdpi.com/2073-4441/13/2/232dam-breakimpact forcemobile bedExner equationtwo-phase model
collection DOAJ
language English
format Article
sources DOAJ
author Cristiana Di Cristo
Massimo Greco
Michele Iervolino
Andrea Vacca
spellingShingle Cristiana Di Cristo
Massimo Greco
Michele Iervolino
Andrea Vacca
Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment Inertia
Water
dam-break
impact force
mobile bed
Exner equation
two-phase model
author_facet Cristiana Di Cristo
Massimo Greco
Michele Iervolino
Andrea Vacca
author_sort Cristiana Di Cristo
title Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment Inertia
title_short Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment Inertia
title_full Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment Inertia
title_fullStr Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment Inertia
title_full_unstemmed Impact Force of a Geomorphic Dam-Break Wave against an Obstacle: Effects of Sediment Inertia
title_sort impact force of a geomorphic dam-break wave against an obstacle: effects of sediment inertia
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2021-01-01
description The evaluation of the impact force on structures due to a flood wave is of utmost importance for estimating physical damage and designing adequate countermeasures. The present study investigates, using 2D shallow-water approximation, the morphodynamics and forces caused by a dam-break wave against a rigid obstacle in the presence of an erodible bed. A widely used coupled equilibrium model, based on the two-dimensional Saint–Venant hydrodynamic equations combined with the sediment continuity Exner equation (SVEM), is compared with a more complex two-phase model (TPM). Considering an experimental set-up presented in the literature with a single rigid obstacle in a channel, two series of tests were performed, assuming sand or light sediments on the bottom. The former test is representative of a typical laboratory experiment, and the latter may be scaled up to a field case. For each test, two different particle diameters were considered. Independently from the particle size, it was found that in the sand tests, SVEM performs similarly to TPM. In the case of light sediment, larger differences are observed, and the SVEM predicts a higher force of about 26% for both considered diameters. The analysis of the flow fields and the morphodynamics shows these differences can be essentially ascribed to the role of inertia of the solid particles.
topic dam-break
impact force
mobile bed
Exner equation
two-phase model
url https://www.mdpi.com/2073-4441/13/2/232
work_keys_str_mv AT cristianadicristo impactforceofageomorphicdambreakwaveagainstanobstacleeffectsofsedimentinertia
AT massimogreco impactforceofageomorphicdambreakwaveagainstanobstacleeffectsofsedimentinertia
AT micheleiervolino impactforceofageomorphicdambreakwaveagainstanobstacleeffectsofsedimentinertia
AT andreavacca impactforceofageomorphicdambreakwaveagainstanobstacleeffectsofsedimentinertia
_version_ 1724331503418081280